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Frontiers of Optoelectronics

ISSN 2095-2759

ISSN 2095-2767(Online)

CN 10-1029/TN

Postal Subscription Code 80-976

Front Optoelec    2013, Vol. 6 Issue (2) : 175-179    https://doi.org/10.1007/s12200-013-0311-4
RESEARCH ARTICLE
Reflected-intensity distribution of angle-tuned thin film filter based on frequency recursive algorithm
Kan YU(), Juanjuan YIN, Jiaqi BAO
Huazhong University of Science and Technology Wenhua College, Wuhan 430074, China
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Abstract

For a three-port angle-tuned thin film filter, the characteristic of reflected-port is very important to reflect multiple wavelengths spectrum. As the filter is in tilted incidence, the reflected-facula broadens and the reflectivity decreases. In this paper, we proposed a frequency recursive algorithm based on fast Fourier transform and Fresnel formula. The reflected-intensity distribution of the narrowband filter from normal incidence to 40° tilted incidence was simulated by this frequency recursive algorithm. Meanwhile, the beam field experiments were accordingly performed in this study. Compared with the traditional beam spatial superposition method, the frequency recursive algorithm is more efficient and precise in calculating the reflectivity of the reflected beam, suggesting the frequency recursive algorithm may be more helpful for fabricating the three-port tunable thin film filter.

Keywords thin film filter      recursive algorithm      tilted incidence      fast Fourier transform     
Corresponding Author(s): YU Kan,Email:onlyfish@126.com   
Issue Date: 05 June 2013
 Cite this article:   
Kan YU,Juanjuan YIN,Jiaqi BAO. Reflected-intensity distribution of angle-tuned thin film filter based on frequency recursive algorithm[J]. Front Optoelec, 2013, 6(2): 175-179.
 URL:  
https://academic.hep.com.cn/foe/EN/10.1007/s12200-013-0311-4
https://academic.hep.com.cn/foe/EN/Y2013/V6/I2/175
Fig.1  Reflected-intensity distribution in single layer film in tilted incidence
Fig.2  Reflected-intensity distribution with different incident angle on the filter
Fig.3  Reflectivity with different incident angle on the filter
Fig.4  Reflected-intensity distribution on the filter at the incident angle of (a) 0° and (b) 15°
Fig.5  Reflected spectrum on the filter
Fig.6  Reflectivity with 15° incident angle on the filter in beam spatial superposition method
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